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©The Author(s) 2021.
Artif Intell Gastrointest Endosc. Jun 28, 2021; 2(3): 50-62
Published online Jun 28, 2021. doi: 10.37126/aige.v2.i3.50
Published online Jun 28, 2021. doi: 10.37126/aige.v2.i3.50
Table 1 Characteristics of current studies about AI-assisted endoscopic diagnosis of Helicobacter pylori infection
Ref. | Type of AI | Type of endoscopy | Training set | Validation set | AUC | Sensitivity (%) | Specificity (%) | Accuracy (%) |
Huang et al[39], 2004 | RFSNN | WLI | 30 patients | 74 patients | NA | 85.4 | 90.9 | NA |
Huang et al[40], 2008 | SVM with SFFS | WLI | 236 patients | 236 patients | NA | 82.6 (antrum); 89.1 (body); 100 (cardia) | 94.0 (antrum); 85.8 (body); 72.0 (cardia) | 87.8 (antrum); 87.6 (body); 86.7 (cardia) |
SVM without SFFS | WLI | 236 patients | 236 patients | NA | 98.5 (antrum); 98.7 (body); 99.1 (cardia) | 70.8 (antrum); 71.5 (body); 70.3 (cardia) | 86.3 (antrum); 86.4 (body); 86.0 (cardia) | |
Shichijo et al[41], 2017 | CNN (first) | WLI | 1750 patients, 32208 images | 397 patients, 11481 images | 0.89 | 81.9 | 83.4 | 83.1 |
CNN (second, constructed according to anatomical locations) | WLI | 1750 patients, 32208 images | 397 patients, 11481 images | 0.93 | 88.9 | 87.4 | 87.7 | |
Shichijo et al[42], 2019 | CNN | WLI | 5236 patients, 98564 images | 847 patients, 23699 images | NA | NA | NA | 48 (H. pylori-positive); 84 (H. pylori-eradicated); 80 (H. pylori-negative) |
Zheng et al[45], 2019 | CNN (first, single image for all image) | WLI | 1507 patients, 76146 images | 452 patients, 3755 images | 0.93 | 81.4 | 90.1 | 84.5 |
CNN (second, single image by different locations) | WLI | 1507 patients, 76146 images | 452 patients, 3755 images | 0.90 (antrum); 0.91 (angularis); 0.94 (corpus); 0.82 (fundus) | 76.1 (antrum); 78.8 (angularis); 81.6 (corpus); 72.4 (fundus) | 88.5 (antrum); 90.5 (angularis); 92.1 (corpus); 80.5 (fundus) | 80.3 (antrum); 82.8 (angularis); 85.6 (corpus); 75.3 (fundus) | |
CNN (third, multiple images per patient) | WLI | 1507 patients, 76146 images | 452 patients, 3755 images | 0.97 | 91.6 | 98.6 | 93.8 | |
Yoshii et al[19], 2020 | ML (model without H. pylori eradication history) | WLI | NA | 498 patients | NA | 91.6 (non-infection); 75.0 (past infection); 59.5 (current infection) | 88.6 (non-infection); 89.9 (past infection); 94.7 (current infection) | 88.6 |
ML (model with H. pylori eradication history) | WLI | NA | 498 patients | NA | 94.0 (non-infection); 94.0 (past infection); 88.1 (current infection) | 93.4 (non-infection); 100.0 (past infection); 94.7 (current infection) | 93.4 | |
Nakashima et al[49], 2018 | CNN | WLI | 162 patients, 1944 images | 60 patients, 60 images | 0.66 | 66.7 | 60.0 | NA |
CNN | BLI-bright | 162 patients, 1944 images | 60 patients, 60 images | 0.96 | 96.7 | 86.7 | NA | |
CNN | LCI | 162 patients, 1944 images | 60 patients, 60 images | 0.95 | 96.7 | 83.3 | NA | |
Yasuda et al[21], 2020 | SVM | LCI | 32 patients, 128 images | 105 patients, 525 images | NA | 90.4 | 85.7 | 87.6% |
- Citation: Lu YF, Lyu B. Current situation and prospect of artificial intelligence application in endoscopic diagnosis of Helicobacter pylori infection. Artif Intell Gastrointest Endosc 2021; 2(3): 50-62
- URL: https://www.wjgnet.com/2689-7164/full/v2/i3/50.htm
- DOI: https://dx.doi.org/10.37126/aige.v2.i3.50